Graphene-like 2D carbon wrapped porous carbon embedded SnO2/CoSn hybrid nanoparticles with enhanced lithium storage performance

石墨烯 材料科学 阳极 锂(药物) 纳米复合材料 碳纤维 纳米颗粒 化学工程 电化学 复合数 纳米技术
作者
Yuexian Li,Jian Song,Ximing Lu,Qinghua Tian,Li Yang,Zhuyin Sui
出处
期刊:Electrochimica Acta [Elsevier BV]
卷期号:: 140282-140282
标识
DOI:10.1016/j.electacta.2022.140282
摘要

• Graphene-like 2D carbon nanosheets were prepared via a facile approach. • SnO 2 /CoSn embedded in porous carbon was wrapped by the graphene-like 2D carbon nanosheets. • The composite architecture offered SnO 2 improved kinetics and excellent structural stability. • The lithium storage properties of the SnO 2 were significantly improved. Eliminating the issues caused by large volumetric expansion and low conductivity is a critical tactic for the performance improvement of SnO 2 anode materials for lithium-ion batteries. Herein, the issues mentioned above are effectively alleviated and hence the lithium storage performance of the SnO 2 is significantly improved through construction of a characteristic nanocomposite. In this nanocomposite the porous carbon embedded SnO 2 /CoSn hybrid nanoparticles are wrapped in a graphene-like 2-dimensional (2D) carbon nanosheets assembled three-dimensional (3D) carbon matrix. This nanocomposite is referred to as SnO 2 /CoSn@3DC. The SnO 2 /CoSn@3DC is demonstrated to integrate the advantages of heterogeneous hybrid nanoparticles, porous carbon and graphene-like 2D carbon nanosheets, therefore showing enhanced electrochemical kinetics and cycling stability. As a result, it delivers 887.1 mAh g − 1 after 110 cycles at 200 mA g − 1 as well as 803.4 mAh g − 1 after 170 cycles at 1000 mA g − 1 , therefore exhibiting good potential in application in lithium-ion batteries as advanced anodes. Furthermore, the strategy reported here for preparing SnO 2 /CoSn@3DC may be extended to prepare other 2D carbon/metallic oxide/alloy composites for advanced lithium-ion battery anodes with various precursors such as ZnSn(OH) 6 and FeSn(OH) 6 compounds.
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